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Chemoproteomics Reveals the Pan-HER Kinase Inhibitor Neratinib To Target an Arabidopsis Epoxide Hydrolase Related to Phytohormone Signaling.

Sabrina NinckVivek HalderJan H KrahnDaniela BeisserSarah ReschIsobel DoddsRené ScholtysikJenny BormannLeonard SewaldMainak D GuptaGeronimo HeilmannDeepak D BhandariKyoko MorimotoPierre BuscaillBettina HauseRenier A L van der HoornFarnusch KaschaniMarkus Kaiser
Published in: ACS chemical biology (2023)
Plant phytohormone pathways are regulated by an intricate network of signaling components and modulators, many of which still remain unknown. Here, we report a forward chemical genetics approach for the identification of functional SA agonists in Arabidopsis thaliana that revealed Neratinib ( Ner ), a covalent pan-HER kinase inhibitor drug in humans, as a modulator of SA signaling. Instead of a protein kinase, chemoproteomics unveiled that Ner covalently modifies a surface-exposed cysteine residue of Arabidopsis epoxide hydrolase isoform 7 (AtEH7), thereby triggering its allosteric inhibition. Physiologically, the Ner application induces jasmonate metabolism in an AtEH7-dependent manner as an early response. In addition, it modulates PATHOGENESIS RELATED 1 (PR1) expression as a hallmark of SA signaling activation as a later effect. AtEH7, however, is not the exclusive target for this physiological readout induced by Ner . Although the underlying molecular mechanisms of AtEH7-dependent modulation of jasmonate signaling and Ner -induced PR1-dependent activation of SA signaling and thus defense response regulation remain unknown, our present work illustrates the powerful combination of forward chemical genetics and chemical proteomics for identifying novel phytohormone signaling modulatory factors. It also suggests that marginally explored metabolic enzymes such as epoxide hydrolases may have further physiological roles in modulating signaling.
Keyphrases
  • emergency department
  • arabidopsis thaliana
  • small molecule
  • signaling pathway
  • protein kinase
  • oxidative stress
  • transcription factor
  • endothelial cells
  • plant growth